Chemical neuroanatomy of the dorsal raphe nucleus and adjacent structures of the mouse brain

中缝背核 甘丙肽 血清素 生物 中缝核 内科学 神经肽 内分泌学 神经降压素 5-羟色胺能 强啡肽 谷氨酸脱羧酶 P物质 神经递质 神经科学 阿片肽 中枢神经系统 类阿片 生物化学 受体 医学 酶
作者
Wen-yu Fu,Erwan Le Maître,Véronique Fabre,Jean‐François Bernard,Qing Xu,Tomas Hökfelt
出处
期刊:Journal of comparative neurology [Wiley]
卷期号:518 (17): 3464-3494 被引量:191
标识
DOI:10.1002/cne.22407
摘要

Abstract Serotonin neurons play a major role in many normal and pathological brain functions. In the rat these neurons have a varying number of cotransmitters, including neuropeptides. Here we studied, with histochemical techniques, the relation between serotonin, some other small‐molecule transmitters, and a number of neuropeptides in the dorsal raphe nucleus (DRN) and the adjacent ventral periaqueductal gray (vPAG) of mouse, an important question being to establish possible differences from rat. Even if similarly distributed, the serotonin neurons in mouse lacked the extensive coexpression of nitric oxide synthase and galanin seen in rat. Although partly overlapping in the vPAG, no evidence was obtained for the coexistence of serotonin with dopamine, substance P, cholecystokinin, enkephalin, somatostatin, neurotensin, dynorphin, thyrotropin‐releasing hormone, or corticotropin‐releasing hormone. However, some serotonin neurons expressed the γ‐aminobutyric acid (GABA)‐synthesizing enzyme glutamic acid decarboxylase (GAD). Work in other laboratories suggests that, as in rat, serotonin neurons in the mouse midline DRN express the vesicular glutamate transporter 3, presumably releasing glutamate. Our study also shows that many of the neuropeptides studied (substance P, galanin, neurotensin, dynorphin, and corticotropin‐releasing factor) are present in nerve terminal networks of varying densities close to the serotonin neurons, and therefore may directly or indirectly influence these cells. The apparently low numbers of coexisting messengers in mouse serotonin neurons, compared to rat, indicate considerable species differences with regard to the chemical neuronatomy of the DRN. Thus, extrapolation of DRN physiology, and possibly pathology, from rat to mouse, and even human, should be made with caution. J. Comp. Neurol. 518:3464–3494, 2010. © 2010 Wiley‐Liss, Inc.
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